首页> 外文会议>European Semantic Web Conference(ESWC 2006); 20060611-14; Budva, Montenegro >Empirical Merging of Ontologies - A Proposal of Universal Uncertainty Representation Framework
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Empirical Merging of Ontologies - A Proposal of Universal Uncertainty Representation Framework

机译:本体的经验合并-通用不确定性表示框架的建议

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The significance of uncertainty representation has become obvious in the Semantic Web community recently. This paper presents our research on uncertainty handling in automatically created ontologies. A new framework for uncertain information processing is proposed. The research is related to OLE (Ontology LEarning) - a project aimed at bottom-up generation and merging of domain-specific ontologies. Formal systems that underlie the uncertainty representation are briefly introduced. We discuss the universal internal format of uncertain conceptual structures in OLE then and offer a utilisation example then. The proposed format serves as a basis for empirical improvement of initial knowledge acquisition methods as well as for general explicit inference tasks.
机译:不确定性表示的重要性最近在语义Web社区中变得显而易见。本文介绍了我们对自动创建本体中不确定性处理的研究。提出了不确定信息处理的新框架。该研究与OLE(本体学习)相关,OLE是一个旨在自下而上生成和合并特定领域本体的项目。简要介绍了不确定性表示基础的形式系统。然后,我们讨论OLE中不确定概念结构的通用内部格式,然后提供一个使用示例。所提出的格式为经验改进初始知识获取方法以及一般的显式推理任务提供了基础。

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